Combined convection nanofluid flow and heat transfer over microscale forward-facing step

The laminar mixed convection flow of nanofluids over a 3D horizontal microscale forward-facing step (MFFS) was numerically investigated using a finite volume method. Various nanoparticle materials, such as SiO2, Al2O3, CuO, and ZnO, were dispersed in ethylene glycol as a base fluid with volume fract...

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Main Authors: Kherbeet, A. Sh H., Mohammed, Hussein A., Munisamy, Kannan M., Salman, B. H.
Format: Article
Published: Inderscience Enterprises Ltd. 2014
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Online Access:http://eprints.utm.my/id/eprint/52145/
http://dx.doi.org/10.1504/IJNP.2014.062008
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spelling my.utm.521452019-01-28T04:44:57Z http://eprints.utm.my/id/eprint/52145/ Combined convection nanofluid flow and heat transfer over microscale forward-facing step Kherbeet, A. Sh H. Mohammed, Hussein A. Munisamy, Kannan M. Salman, B. H. TJ Mechanical engineering and machinery The laminar mixed convection flow of nanofluids over a 3D horizontal microscale forward-facing step (MFFS) was numerically investigated using a finite volume method. Various nanoparticle materials, such as SiO2, Al2O3, CuO, and ZnO, were dispersed in ethylene glycol as a base fluid with volume fractions in the range of 0 and 0.04. The duct has a step height of 650 ìm. The downstream wall was heated with a uniform heat flux of 12 Watt, and the straight wall of the duct was kept at a constant temperature of 323 K. The Reynolds number value was maintained at 35. The results revealed that the SiO2 nanofluid had the highest Nusselt number, which increased with decreasing nanoparticle material density, increasing volume fraction and decreasing nanoparticles diameter. The static pressure and the wall shear stress increased with increasing particle volume fraction and decreasing particle diameter. Moreover, the nanoparticle volume faction, material and diameters had small effect on the skin friction coefficient. Inderscience Enterprises Ltd. 2014 Article PeerReviewed Kherbeet, A. Sh H. and Mohammed, Hussein A. and Munisamy, Kannan M. and Salman, B. H. (2014) Combined convection nanofluid flow and heat transfer over microscale forward-facing step. International Journal of Nanoparticles, 7 (1). pp. 21-5. ISSN 1753-2515 http://dx.doi.org/10.1504/IJNP.2014.062008 DOI: 10.1504/IJNP.2014.062008
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic TJ Mechanical engineering and machinery
spellingShingle TJ Mechanical engineering and machinery
Kherbeet, A. Sh H.
Mohammed, Hussein A.
Munisamy, Kannan M.
Salman, B. H.
Combined convection nanofluid flow and heat transfer over microscale forward-facing step
description The laminar mixed convection flow of nanofluids over a 3D horizontal microscale forward-facing step (MFFS) was numerically investigated using a finite volume method. Various nanoparticle materials, such as SiO2, Al2O3, CuO, and ZnO, were dispersed in ethylene glycol as a base fluid with volume fractions in the range of 0 and 0.04. The duct has a step height of 650 ìm. The downstream wall was heated with a uniform heat flux of 12 Watt, and the straight wall of the duct was kept at a constant temperature of 323 K. The Reynolds number value was maintained at 35. The results revealed that the SiO2 nanofluid had the highest Nusselt number, which increased with decreasing nanoparticle material density, increasing volume fraction and decreasing nanoparticles diameter. The static pressure and the wall shear stress increased with increasing particle volume fraction and decreasing particle diameter. Moreover, the nanoparticle volume faction, material and diameters had small effect on the skin friction coefficient.
format Article
author Kherbeet, A. Sh H.
Mohammed, Hussein A.
Munisamy, Kannan M.
Salman, B. H.
author_facet Kherbeet, A. Sh H.
Mohammed, Hussein A.
Munisamy, Kannan M.
Salman, B. H.
author_sort Kherbeet, A. Sh H.
title Combined convection nanofluid flow and heat transfer over microscale forward-facing step
title_short Combined convection nanofluid flow and heat transfer over microscale forward-facing step
title_full Combined convection nanofluid flow and heat transfer over microscale forward-facing step
title_fullStr Combined convection nanofluid flow and heat transfer over microscale forward-facing step
title_full_unstemmed Combined convection nanofluid flow and heat transfer over microscale forward-facing step
title_sort combined convection nanofluid flow and heat transfer over microscale forward-facing step
publisher Inderscience Enterprises Ltd.
publishDate 2014
url http://eprints.utm.my/id/eprint/52145/
http://dx.doi.org/10.1504/IJNP.2014.062008
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score 13.15806